Affiliation:
1. Department for Biotechnology and Microbiology, Institute of Chemical Engineering, TU Wien, Vienna, Austria
Abstract
ABSTRACT
The state-of-the-art procedure for gene insertions into
Trichoderma reesei
is a cotransformation of two plasmids, one bearing the gene of interest and the other a marker gene. This procedure yields up to 80% transformation efficiency, but both the number of integrated copies and the loci of insertion are unpredictable. This can lead to tremendous pleiotropic effects. This study describes the development of a novel transformation system for site-directed gene insertion based on auxotrophic markers. For this purpose, we tested the applicability of the genes
asl1
(encoding an enzyme of the
l
-arginine biosynthesis pathway), the
hah1
(encoding an enzyme of the
l
-lysine biosynthesis pathway), and the
pyr4
(encoding an enzyme of the uridine biosynthesis pathway). The developed transformation system yields strains with an additional gene at a defined locus that are prototrophic and ostensibly isogenic compared to their parental strain. A positive transformation rate of 100% was achieved due to the developed split-marker system. Additionally, a double-auxotrophic strain that allows multiple genomic manipulations was constructed, which facilitates metabolic engineering purposes in
T. reesei
. By employing
goxA
of
Aspergillus niger
as a reporter system, the influence on the expression of an inserted gene caused by the orientation of the insertion and the transformation strategy used could be demonstrated. Both are important aspects to be considered during strain engineering.
Publisher
American Society for Microbiology
Subject
Ecology,Applied Microbiology and Biotechnology,Food Science,Biotechnology
Cited by
56 articles.
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